24 resultados para ZnO microrod array films


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Thin film applications have become increasingly important in our search for multifunctional and economically viable technological solutions of the future. Thin film coatings can be used for a multitude of purposes, ranging from a basic enhancement of aesthetic attributes to the addition of a complex surface functionality. Anything from electronic or optical properties, to an increased catalytic or biological activity, can be added or enhanced by the deposition of a thin film, with a thickness of only a few atomic layers at the best, on an already existing surface. Thin films offer both a means of saving in materials and the possibility for improving properties without a critical enlargement of devices. Nanocluster deposition is a promising new method for the growth of structured thin films. Nanoclusters are small aggregates of atoms or molecules, ranging in sizes from only a few nanometers up to several hundreds of nanometers in diameter. Due to their large surface to volume ratio, and the confinement of atoms and electrons in all three dimensions, nanoclusters exhibit a wide variety of exotic properties that differ notably from those of both single atoms and bulk materials. Nanoclusters are a completely new type of building block for thin film deposition. As preformed entities, clusters provide a new means of tailoring the properties of thin films before their growth, simply by changing the size or composition of the clusters that are to be deposited. Contrary to contemporary methods of thin film growth, which mainly rely on the deposition of single atoms, cluster deposition also allows for a more precise assembly of thin films, as the configuration of single atoms with respect to each other is already predetermined in clusters. Nanocluster deposition offers a possibility for the coating of virtually any material with a nanostructured thin film, and therein the enhancement of already existing physical or chemical properties, or the addition of some exciting new feature. A clearer understanding of cluster-surface interactions, and the growth of thin films by cluster deposition, must, however, be achieved, if clusters are to be successfully used in thin film technologies. Using a combination of experimental techniques and molecular dynamics simulations, both the deposition of nanoclusters, and the growth and modification of cluster-assembled thin films, are studied in this thesis. Emphasis is laid on an understanding of the interaction between metal clusters and surfaces, and therein the behaviour of these clusters during deposition and thin film growth. The behaviour of single metal clusters, as they impact on clean metal surfaces, is analysed in detail, from which it is shown that there exists a cluster size and deposition energy dependent limit, below which epitaxial alignment occurs. If larger clusters are deposited at low energies, or cluster-surface interactions are weaker, non-epitaxial deposition will take place, resulting in the formation of nanocrystalline structures. The effect of cluster size and deposition energy on the morphology of cluster-assembled thin films is also determined, from which it is shown that nanocrystalline cluster-assembled films will be porous. Modification of these thin films, with the purpose of enhancing their mechanical properties and durability, without destroying their nanostructure, is presented. Irradiation with heavy ions is introduced as a feasible method for increasing the density, and therein the mechanical stability, of cluster-assembled thin films, without critically destroying their nanocrystalline properties. The results of this thesis demonstrate that nanocluster deposition is a suitable technique for the growth of nanostructured thin films. The interactions between nanoclusters and their supporting surfaces must, however, be carefully considered, if a controlled growth of cluster-assembled thin films, with precisely tailored properties, is to be achieved.

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When augmented with the longest common prefix (LCP) array and some other structures, the suffix array can solve many string processing problems in optimal time and space. A compressed representation of the LCP array is also one of the main building blocks in many compressed suffix tree proposals. In this paper, we describe a new compressed LCP representation: the sampled LCP array. We show that when used with a compressed suffix array (CSA), the sampled LCP array often offers better time/space trade-offs than the existing alternatives. We also show how to construct the compressed representations of the LCP array directly from a CSA

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Neuroblastoma has successfully served as a model system for the identification of neuroectoderm-derived oncogenes. However, in spite of various efforts, only a few clinically useful prognostic markers have been found. Here, we present a framework, which integrates DNA, RNA and tissue data to identify and prioritize genetic events that represent clinically relevant new therapeutic targets and prognostic biomarkers for neuroblastoma.

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Thin films are the basis of much of recent technological advance, ranging from coatings with mechanical or optical benefits to platforms for nanoscale electronics. In the latter, semiconductors have been the norm ever since silicon became the main construction material for a multitude of electronical components. The array of characteristics of silicon-based systems can be widened by manipulating the structure of the thin films at the nanoscale - for instance, by making them porous. The different characteristics of different films can then to some extent be combined by simple superposition. Thin films can be manufactured using many different methods. One emerging field is cluster beam deposition, where aggregates of hundreds or thousands of atoms are deposited one by one to form a layer, the characteristics of which depend on the parameters of deposition. One critical parameter is deposition energy, which dictates how porous, if at all, the layer becomes. Other parameters, such as sputtering rate and aggregation conditions, have an effect on the size and consistency of the individual clusters. Understanding nanoscale processes, which cannot be observed experimentally, is fundamental to optimizing experimental techniques and inventing new possibilities for advances at this scale. Atomistic computer simulations offer a window to the world of nanometers and nanoseconds in a way unparalleled by the most accurate of microscopes. Transmission electron microscope image simulations can then bridge this gap by providing a tangible link between the simulated and the experimental. In this thesis, the entire process of cluster beam deposition is explored using molecular dynamics and image simulations. The process begins with the formation of the clusters, which is investigated for Si/Ge in an Ar atmosphere. The structure of the clusters is optimized to bring it as close to the experimental ideal as possible. Then, clusters are deposited, one by one, onto a substrate, until a sufficiently thick layer has been produced. Finally, the concept is expanded by further deposition with different parameters, resulting in multiple superimposed layers of different porosities. This work demonstrates how the aggregation of clusters is not entirely understood within the scope of the approximations used in the simulations; yet, it is also shown how the continued deposition of clusters with a varying deposition energy can lead to a novel kind of nanostructured thin film: a multielemental porous multilayer. According to theory, these new structures have characteristics that can be tailored for a variety of applications, with precision heretofore unseen in conventional multilayer manufacture.

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This dissertation deals with the design, fabrication, and applications of microscale electrospray ionization chips for mass spectrometry. The microchip consists of microchannel, which leads to a sharp electrospray tip. Microchannel contain micropillars that facilitate a powerful capillary action in the channels. The capillary action delivers the liquid sample to the electrospray tip, which sprays the liquid sample to gas phase ions that can be analyzed with mass spectrometry. The microchip uses a high voltage, which can be utilized as a valve between the microchip and mass spectrometry. The microchips can be used in various applications, such as for analyses of drugs, proteins, peptides, or metabolites. The microchip works without pumps for liquid transfer, is usable for rapid analyses, and is sensitive. The characteristics of performance of the single microchips are studied and a rotating multitip version of the microchips are designed and fabricated. It is possible to use the microchip also as a microreactor and reaction products can be detected online with mass spectrometry. This property can be utilized for protein identification for example. Proteins can be digested enzymatically on-chip and reaction products, which are in this case peptides, can be detected with mass spectrometry. Because reactions occur faster in a microscale due to shorter diffusion lengths, the amount of protein can be very low, which is a benefit of the method. The microchip is well suited to surface activated reactions because of a high surface-to-volume ratio due to a dense micropillar array. For example, titanium dioxide nanolayer on the micropillar array combined with UV radiation produces photocatalytic reactions which can be used for mimicking drug metabolism biotransformation reactions. Rapid mimicking with the microchip eases the detection of possibly toxic compounds in preclinical research and therefore could speed up the research of new drugs. A micropillar array chip can also be utilized in the fabrication of liquid chromatographic columns. Precisely ordered micropillar arrays offer a very homogenous column, where separation of compounds has been demonstrated by using both laser induced fluorescence and mass spectrometry. Because of small dimensions on the microchip, the integrated microchip based liquid chromatography electrospray microchip is especially well suited to low sample concentrations. Overall, this work demonstrates that the designed and fabricated silicon/glass three dimensionally sharp electrospray tip is unique and facilitates stable ion spray for mass spectrometry.

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Työssä tutkitaan yhtäältä saksankielisen elokuvan Muiden elämä ( Das Leben der Anderen ) kolmen suomenkielisen tekstitysversion tekstityksen muotoseikkoja, kuten välimerkkien käyttöä, repliikki- ja rivijakoa, ja toisaalta tekstityksen sisältöseikkoja, joita tarkastellaan tekstityksessä käytettävien käännösstrategioiden avulla. Tutkielmassa tarkastellaan, ovatko tekstityksissä käytetyt muotoseikat konventioiden mukaisia ja minkälaisia käännösstrategioita tekstityksissä on käytetty sekä johtaako tietyn käännösstrategian käyttö merkityksen muutoksiin ja kaventumisiin tekstityksessä. Tutkielman aineistona on elokuva Muiden elämä ja sen kolme suomenkielistä tekstitystä: elokuvateattereissa esitetty versio, DVD-tekstitys ja televisiossa esitetty versio. Hypoteesina oli, että kaikkien versioiden muotoseikat ovat konventioiden mukaisia ja että versioilla on eroavuuksia ruututekstien määrässä ja repliikkijaossa. Lisäksi oletettiin, että tietyn käännösstrategian käytön ja merkityksen muutoksien välillä on yhteys, niin että merkityksen muutoksia esiintyy eniten silloin, kun kaikkea sanottua ei voida kääntää. Tutkielman teoriataustassa esitellään aluksi lyhyesti av-kääntämisen muita lajeja, kuten ns. dubbausta eli jälkiäänitystä, selostusta ja voice-overia, jonka jälkeen syvennytään tekstityksen teoriaan, tekstityksen muotoseikkoihin ja konventioihin sekä tekstityksen käännösstrategioihin. Tekstityksen sisältöseikkojen analyysin viitekehyksenä ovat Henrik Gottliebin (1994, 1997) kymmenen käännösstrategiaa: lisäys (engl. expansion), para-fraasi (paraphrase), suora käännös (transfer), imitaatio (imitation), transkriptio (transcription), siirtäminen (dislocation), tiivistäminen (condensation), lyhentäminen (decimation), poisjättäminen (deletion) ja resignaatio (resignation). Tutkielmassa analysoitiin kaikkien tekstitysversioiden muotoseikat. Tekstityksen sisältöseikkojen tutkimuksessa jokainen dialogin lause tai sivulause analysoitiin omana verbaalisena segmenttinään. Yhteensä analysoitiin 1311 verbaalista segmenttiä ja tutkittiin, mitä käännösstrategiaa missäkin tekstitysversiossa oli missäkin osakäännöksessä käytetty, sekä tarkasteltiin, muuttuuko repliikissä merkitys alkutekstiin verrattuna. Strategiat kuvataan ja niiden käyttöä valaistaan esimerkkien avulla. Tulokset ovat hypoteesia tukevia: Tutkielmassa havaittiin, että kaikkien tekstitysversioiden muotoseikat ovat suurimmalta osin konventioiden mukaisia. Eroja oli havaittavissa tavuviivan, pilkun ja kursiivin käytössä. Versiot eroavat myös ruututekstien määrässä: elokuvaversiossa on eniten ruututekstejä (1091), vaikka siinä on vähiten sanoja (3968); DVD-tekstityksessä on 876 ruututekstiä ja 4278 sanaa ja TV-tekstityksessä on 983 ruututekstiä ja 5293 sanaa. Eroavaisuudet selittyvät sillä, että elokuvatekstityksen ruututekstit ovat lyhyempiä ja nopeammin ilmestyviä kuin DVD- tai TV-tekstitysten. Tutkittu DVD-tekstitys on elokuvatekstityksen muokkaus, mistä johtuu sen vähäinen sana- ja ruututekstimäärä. Tutkielmassa havaittiin myös, että kaikissa versioissa yleisimmin käytetty käännösstrategia oli suora käännös, mutta TV-tekstityksessä sitä oli käytetty yli 50 %:ssa kaikista osakäännöksistä ja DVD- ja elokuvaversiossa yli 35 %:ssa, eli TV-tekstityksessä sitä oli käytetty huomattavasti enemmän kuin muissa versioissa. Lyhentämistä ja poisjättämistä oli DVD- ja elokuvatekstityksessä käytetty enemmän kuin TV-tekstityksessä. Nämäkin erot selit-tynevät elokuvatekstityksen pienemmällä tilalla ja tämän tekstityksen muokkaamisesta DVD-tekstitykseksi. Merkityksen muutoksia ja kaventumisia esiintyi eniten strategioiden poisjättäminen ja lyhentäminen yhteydessä, muiden strategioiden yhteydessä merkityksen muutoksia ja kaventumisia esiintyi vain marginaalisesti. Tulokset tukevat hypoteesia siitä, että merkitys muuttuu ja kaventuu eniten silloin, kun kaikkea sanottua ei voida kääntää.